Rotating electric machine
09893592 ยท 2018-02-13
Assignee
Inventors
Cpc classification
F16D2121/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/183
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/1025
ELECTRICITY
International classification
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotating electric machine includes: a rotation shaft; a bearing retaining the rotation shaft; an electromagnetic brake that is provided on an outer peripheral side of the rotation shaft and is located between the bearing and a rotor, the electromagnetic brake locking the rotation shaft during non-excitation and releasing the locking during excitation; a magnetic-flux shielding unit provided on an outer peripheral side of the electromagnetic brake; and a slidable contact unit that is provided so as to be in contact with the magnetic-flux shielding unit and the rotation shaft and comes into contact with the magnetic-flux shielding unit and the rotation shaft at least at two locations on the bearing side and the rotor side, wherein a magnetic field generated from the electromagnetic brake forms a closed circuit through the rotation shaft, the magnetic-flux shielding unit, and the slidable contact unit.
Claims
1. A rotating electric machine comprising: a rotation shaft; a bearing that retains the rotation shaft; an electromagnetic brake that is provided on an outer peripheral side of the rotation shaft and is located between the bearing and a rotor, the electromagnetic brake locking the rotation shaft during non-excitation and releasing the locking during excitation; a magnetic-flux shielding unit provided on an outer peripheral side of the electromagnetic brake; and a slidable contact unit that is provided such that the slidable contact unit is in contact with the magnetic-flux shielding unit and the rotation shaft and comes into contact with the magnetic-flux shielding unit and the rotation shaft at least at two locations on the bearing side and the rotor side, wherein a magnetic field generated from the electromagnetic brake forms a closed circuit through the rotation shaft, the magnetic-flux shielding unit, and the slidable contact unit.
2. The rotating electric machine according to claim 1, wherein the electromagnetic brake is fixed to the magnetic-flux shielding unit.
3. The rotating electric machine according to claim 1, wherein the magnetic-flux shielding unit is provided such that the magnetic-flux shielding unit covers the electromagnetic brake.
4. The rotating electric machine according to claim 1, wherein the slidable contact unit is a brush that provides line contact at two opposing locations on a cross-section of the rotation shaft.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
DESCRIPTION OF EMBODIMENTS
First Embodiment
(5)
(6) In contrast, when the current flowing through the electromagnetic coil 35 is interrupted so that the electromagnetic coil 35 is in a non-excited state, the electromagnetic attraction force of the brake stator 34 itself disappears in the electromagnetic brake 3, and the armature 32 is pushed back by the elastic force of the spring in the electromagnetic brake 3. As a result, the rotor 51 is braked and thus stops.
(7) A sensor magnet 1, which is a magnetic encoder by which the rotation position of the rotating electric machine 5 is read, is attached to a boss 11, and the boss 11 is fitted into the rotation shaft 52, which is a component of the rotor 51. A magnetic-field detecting element 2 detects the magnetic field generated from the sensor magnet 1. The rotating electric machine 5 includes a bracket 55 and a bearing 56 on the counter-load side, which retains the rotation shaft 52. Magnetic shields 4a and 4b are magnetic-flux shielding units provided on the outer peripheral side of the electromagnetic brake 3. The magnetic shields 4a and 4b are located on the inner side of the bearing 56 in the rotating electric machine body. The bearing 56 is provided on the counter-load side of the rotation shaft 52. Specifically, the magnetic shields 4a and 4b are located between the bearing 56, which is provided on the counter-load side of the rotation shaft 52, and the bearing (not illustrated), which is provided on the load side of the rotation shaft 52. Brushes 41a to 41d are slidable contact units that are provided on the magnetic shields 4a and 4b and are slidably in contact with the rotation shaft 52. A non-magnetic body 33 is interposed between the electromagnetic brake 3 and the magnetic shield 4b.
(8)
(9) The magnetic shield is composed of two types of magnetic shields, i.e., the cylindrical magnetic shield 4a with one end surface closed and the planar disk-shaped magnetic shield 4b, as illustrated in
(10) While the rotating electric machine is rotating, a current flows through the electromagnetic coil 35 forming the electromagnetic brake 3. In the excited state where the current flows through the electromagnetic coil 35, the magnetic field is generated in the brake stator 34, and the armature 32 is always attracted to the brake stator 34 side; therefore, the rotor 51 can rotate. However, the magnetic field generated in the brake stator 34 leaks to the rotation shaft 52 and a magnetic flux is generated. In the first embodiment of the present invention, the leakage magnetic flux that is generated because of the electromagnetic brake 3 and leaks to the rotation shaft 52 can be reduced by forming closed circuits through the rotation shaft 52, the magnetic shields 4a and 4b, and the brushes 41a to 41d fixed to the magnetic shields 4a and 4b. As a result, it is possible to reduce the adverse effect on the bearing 56 due to the leakage magnetic flux.
(11) Moreover, although the magnetic flux also leaks to the rotation shaft 52 because of the stator 53, the leakage magnetic flux that leaks from the stator 53 can also be reduced by forming closed circuits through the rotation shaft 52, the magnetic shields 4a and 4b, and the brushes 41a to 41d fixed to the magnetic shields 4a and 4b. As a result, it is possible to reduce the adverse effect on the bearing 56 due to the leakage magnetic flux that leaks from the stator 53.
(12)
(13) Moreover, as illustrated in
(14) Furthermore, in the first embodiment of the present invention, with regard also to the leakage magnetic flux that is generated because of the electromagnetic brake 3 and the stator 53 and leaks to the rotation shaft 52, the amount of magnetic flux leaking to the sensor magnet 1 can be reduced by forming two closed circuits: the closed circuits 100a and 100b. As a result, it is possible to reduce the adverse effect on the sensor magnet 1 due to the leakage magnetic flux leaking to the rotation shaft 52, thereby improving the accuracy of reading the rotation position of the rotating electric machine 5 with the magnetic-field detecting element 2.
REFERENCE SIGNS LIST
(15) 1 sensor magnet, 2 magnetic-field detecting element, 3 electromagnetic brake, 4a to 4b magnetic shield, 5 rotating electric machine, 11 boss, 32 armature, 33 non-magnetic body, 34 brake stator, 41a to 41d brush, 51 rotor, 52 rotation shaft, 53 stator, 54 frame, 55 bracket, 56 bearing, 100a to 100b closed circuit, 110a to 110b leakage magnetic flux.